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单细胞测量的临床和转化模式:人工智能单细胞。

Clinical and translational mode of single-cell measurements: An artificial intelligent single-cell.

机构信息

Shanghai Institute of Clinical Bioinformatics, Shanghai, China.

Fudan University Center of Clinical Bioinformatics, Shanghai, China.

出版信息

Clin Transl Med. 2024 Sep;14(9):e1818. doi: 10.1002/ctm2.1818.

DOI:10.1002/ctm2.1818
PMID:39308059
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11417141/
Abstract

With rapid development and mature of single-cell measurements, single-cell biology and pathology become an emerging discipline to understand the disease. However, it is important to address concerns raised by clinicians as to how to apply single-cell measurements for clinical practice, translate the signals of single-cell systems biology into determination of clinical phenotype, and predict patient response to therapies. The present Perspective proposes a new system coined as the clinical artificial intelligent single-cell (caiSC) with the dynamic generator of clinical single-cell informatics, artificial intelligent analyzers, molecular multimodal reference boxes, clinical inputs and outs, and AI-based computerization. This system provides reliable and rapid information for impacting clinical diagnoses, monitoring, and prediction of the disease at the single-cell level. The caiSC represents an important step and milestone to translate the single-cell measurement into clinical application, assist clinicians' decision-making, and improve the quality of medical services. There is increasing evidence to support the possibility of the caiSC proposal, since the corresponding biotechnologies associated with caiSCs are rapidly developed. Therefore, we call the special attention and efforts from various scientists and clinicians on the caiSCs and believe that the appearance of the caiSCs can shed light on the future of clinical molecular medicine.

摘要

随着单细胞测量技术的快速发展和成熟,单细胞生物学和病理学已成为一门新兴学科,用于了解疾病。然而,重要的是要解决临床医生提出的担忧,即如何将单细胞测量应用于临床实践,将单细胞系统生物学的信号转化为临床表型的确定,并预测患者对治疗的反应。本观点提出了一个新的系统,称为临床人工智能单细胞(caiSC),其具有临床单细胞信息学的动态发生器、人工智能分析器、分子多模态参考框、临床输入和输出以及基于人工智能的计算机化。该系统为在单细胞水平上影响临床诊断、监测和疾病预测提供了可靠和快速的信息。caiSC 代表了将单细胞测量转化为临床应用、协助临床医生决策和提高医疗服务质量的重要步骤和里程碑。越来越多的证据支持 caiSC 提案的可能性,因为与 caiSC 相关的生物技术正在迅速发展。因此,我们呼吁各个科学家和临床医生关注 caiSC,并相信 caiSC 的出现将为临床分子医学的未来带来曙光。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/405c/11417141/f6aee11d9074/CTM2-14-e1818-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/405c/11417141/f6aee11d9074/CTM2-14-e1818-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/405c/11417141/f6aee11d9074/CTM2-14-e1818-g001.jpg

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